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Bacterial variability in the mammalian gut captured by a single-cell synthetic oscillator

Published version
Peer-reviewed

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Abstract

Abstract: Synthetic gene oscillators have the potential to control timed functions and periodic gene expression in engineered cells. Such oscillators have been refined in bacteria in vitro, however, these systems have lacked the robustness and precision necessary for applications in complex in vivo environments, such as the mammalian gut. Here, we demonstrate the implementation of a synthetic oscillator capable of keeping robust time in the mouse gut over periods of days. The oscillations provide a marker of bacterial growth at a single-cell level enabling quantification of bacterial dynamics in response to inflammation and underlying variations in the gut microbiota. Our work directly detects increased bacterial growth heterogeneity during disease and differences between spatial niches in the gut, demonstrating the deployment of a precise engineered genetic oscillator in real-life settings.

Description

Funder: Harvard Medical School; doi: https://doi.org/10.13039/100006691


Funder: Wyss Institute for Biologically Inspired Engineering

Journal Title

Nature Communications

Conference Name

Journal ISSN

2041-1723

Volume Title

10

Publisher

Nature Publishing Group UK

Rights and licensing

Except where otherwised noted, this item's license is described as http://creativecommons.org/licenses/by/4.0/
Sponsorship
United States Department of Defense | Defense Advanced Research Projects Agency (DARPA) (HR0011-16-2-0049, HR0011-15-C-0094)